| [1]王瑜.[1]王瑜.《中国矿产资源报告(2023)》显示我国油气和非油气矿产地质勘查投资实现双增长[J].资源与人居环境,2023,(11):7.[2]Wang Yu.China Mineral Resources Report (2023) shows that China' s investment in geological exploration of oil and gas and non-oil and gas minerals has achieved double growth [J].Resources and Human Settlements, 2023, (11): 7.[3]李全生, 李晓斌, 许家林, 等.岩层采动裂隙演化规律与生态治理技术研究进展[J].煤炭科学技术, 2022, 50(01):28-47[4]Li Quansheng, Li Xiaobin, Xu Jialin, et al.Research advances in mining fractures evolution law of rockstrata and ecological treatment technology [ J ][J].Coal Science and Technology, 2022, 50(01):28-47[5]卞正富, 张益东, 王猛, 等.新疆煤炭资源开发潜力与开发策略[J].煤炭学报, 2024, 49(02):967-977[6]Bian Zhengfu, Zhang Yidong, Wang Meng, et al.Research on the potential and strategy for coal resources exploitation in Xinjiang [ J ][J].Coal Journal, 2024, 49(02):967-977[7]王国法, 庞义辉, 许永祥, 等.厚煤层智能绿色高效开采技术与装备研发进展[J].采矿与安全工程学报, 2023, 40(05):882-893[8]Wang Guofa, Pang Yihui, Xu Yongxiang, et al.Development of intelligent green and efficient mining technology and equipment for thick coal seam [ J ][J].Journal of Mining and Safety Engineering, 2023, 40(05):882-893[9]赵毅鑫, 韩鹏华, 杨玉亮, 等.综采面回采速度对基本顶初次断裂失稳的影响规律[J].中南大学学报自然科学版, 2023, 54(06):2312-2322[10]Zhao Yixin, Han Penghua, Yang Yuliang, et al.Influence law of advance speed at fully mechanized longwall face on initial fracture of main roof [ J ][J].Journal of Central South University ( Natural Science Edition), 2023, 54(06):2312-2322[11]赵毅鑫, 令春伟, 刘斌, 等.浅埋超大采高工作面覆岩裂隙演化及能量耗散规律研究[J].采矿与安全工程学报, 2021, 38(01):9-18[12]Zhao Yixin, Ling Chunwei, Liu Bin, et al.Fracture evolution and energy dissipation of overlying strata in shallow-buried underground mining with ultra-high working face [ J ][J].Journal of Mining and Safety Engineering, 2021, 38(01):9-18[13]张村, 任赵鹏, 韩鹏华, 等.西部矿区厚基岩特大采高工作面导水裂隙带发育特征[J].矿业科学学报, 2022, 7(03):333-343[14]Zhang Cun, Ren Zhaopeng, Han Penghua, et al.Characteristic of the water-conducting fracture zone development in thick overburden working face with extra-large mining height in western mining area [ J ][J].Journal of Mining Science, 2022, 7(03):333-343[15]李全生, 任赵鹏, 张村, 等.推进速度影响下的上湾煤矿高强度开采覆岩-地表移动特征[J].采矿与安全工程学报, 2024, 41(03):437-449[16]Li Quansheng, Ren Zhaopeng, Zhang Cun, et al.Characteristics of overburden-surface movement of high-intensity mining in Shangwan coal mine under the influence of advancing speed [ J ][J].Journal of Mining and Safety Engineering, 2024, 41(03):437-449[17]李全生, 李晓斌, 许家林, 等.岩层采动裂隙演化规律与生态治理技术研究进展[J].煤炭科学技术, 2022, 50(01):28-47[18]Li Quansheng, Li Xiaobin, Xu Jialin, et al.Research advances in mining fractures evolution law of rock strata and ecological treatment technology [ J ][J].Coal Science and Technology, 2022, 50(01):28-47[19]何祥, 张村, 赵毅鑫, 等.基于覆岩损伤本构模型的高强度开采参数确定及减损效果评价[J].采矿与安全工程学报, 2021, 38(03):439-448[20]He Xiang, Zhang Cun, Zhao Yixin, et al.Parameters determination of high-intensity mining and reduction effect evaluation based on damage constitutive model of overburden rock [ J ][J].Journal of Mining and Safety Engineering, 2021, 38(03):439-448[21]李杨, 杨天鸿, 郝耐, 等.基于应力释放率与微震监测的高强度开采工作面推进速度效应分析[J].采矿与安全工程学报, 2021, 38(02):295-303[22]Li Yang, Yang Tianhong, Hao Nai, et al.Mining rate effect of high-intensity working face based on stress release rate and microseismic monitoring [ J ][J].Journal of Mining and Safety Engineering, 2021, 38(02):295-303[23]杨胜利, 王兆会, 蒋威, 等.高强度开采工作面煤岩灾变的推进速度效应分析[J].煤炭学报, 2016, 41(03):586-594[24]Yang Shengli, Wang Zhaohui, Jiang Wei, et al.Advancing rate effect on rock and coal failure format in high intensity mining face [ J ][J].According to Coal Journal, 2016, 41(03):586-594[25]王猛, 宋子枫, 勾攀峰, 等.综采面覆岩结构稳定控制的推采速度效应[J].中国矿业大学学报, 2020, 49(03):463-470[26]Wang Meng, Song Zifeng, Gou Panfeng, et al.Effect of mining speed on stability control of overburden structure in fully mechanized coal face[J].Journal of China University of Mining and Technology, 2020, 49(03):463-470[27]崔峰, 冯港归, 贾冲, 等.冲击地压矿井近距离特厚煤层综放工作面合理推进速度研究[J].煤炭科学技术, 2023, 51(07):287-297[28]Cui Feng, Feng Ganggui, Jia Chong, et al.Study on reasonable advancing speed of fully-mechanized top-coal caving face in mining contugous extra-thick coal seams in rockburst mine[J].Coal science and technology, 2023, 51(07):287-297[29]王云刚, 唐飞, 杜炳成, 等.超长回采工作面微震特征的影响因素研究[J].中国安全生产科学技术, 2022, 18(08):91-97[30]Wang Yungang, Tang Fei, Du Bingcheng, et al.Study on influencing factors of microseismic characteristics of ultra-long mining face [ J ][J].China Safety Production Science and Technology, 2022, 18(08):91-97[31]李树刚, 刘李东, 赵鹏翔, 等.综采工作面覆岩压实区裂隙动态演化规律影响因素分析[J].煤炭科学技术, 2022, 50(01):95-104[32]Li Shugang, Liu Lidong, Zhao Pengxiang, et al.Analysis and application of fracture evolution law of overburden compacted areaon fully-mechanized mining face under multiple factors [ J ][J].Coal science and technology, 2022, 50(01):95-104[33]刘洪磊, 杨天鸿, 张博华, 等.西部煤层开采覆岩垮落及矿压显现影响因素研究[J].煤炭学报, 2017, 42(02):460-469[34]Liu Honglei, Yang Tianhong, Zhang Bohua et al.Influence factors of overlying coal strata falling and mine pressure behaviours in western coal mines [ J ][J].Coal Journal, 2017, 42(02):460-469[35]杨敬虎, 孙少龙, 孔德中.高强度开采工作面矿压显现的面长和推进速度效应[J].岩土力学, 2015, 36(S2):333-339[36]Yang Jinghu, Sun Shaolong, Kong Dezhong.Effect of working face length and advancing speed on strata behaviors in high-intensity mining[J].Geotechnical mechanics, 2015, 36(S2):333-339[37]周辉, 杨艳霜, 肖海斌, 等.硬脆性大理岩单轴抗拉强度特性的加载速率效应研究——试验特征与机制[J].岩石力学与工程学报, 2013, 32(09):1868-1875[38]Zhou Hui, Yang Yanshuang, Xiao Haibin, et al.Research on loading rate effect of tensile strength property of hard brittle marble——test characteristics and mechanism [ J ][J].Rock mechanics and engineering, 2013, 32(09):1868-1875[39]涂敏, 赵庆冲, 张向阳, 等.不同加载速率下煤岩动力破坏特征实验研究[J].采矿与安全工程学报, 2023, 40(05):1031-1042[40]Tu Min, Zhao Qingchong, Zhang Xiangyang, et al.Experimental study on dynamic failure characteristics of coal rock under different loading rates [ J ][J].Journal of Mining and Safety Engineering, 2023, 40(05):1031-1042 |